Delhi Technical University, New Delhi, Delhi 110042, India.
CSIR-Advanced Materials and Processes Research Institute, Bhopal, Madhya Pradesh-462026, India.
ACS Appl Mater Interfaces. 2023 May 24;15(20):24724-24735. doi: 10.1021/acsami.3c02036. Epub 2023 May 12.
Herein, we report the paddy-straw-derived graphene quantum dots (GQDs)-reinforced vertical-aligned two-dimensional (2D) ZnO nanosheet-based flexible triboelectric nanogenerator (FTNG) for scavenging mechanical energy for the first time. The GQDs (diameter ∼5-7 nm) and ZnO nanosheets were grown using a hydrothermal method and seed-assisted chemical route, respectively. The X-ray diffraction and electron microscopy results confirmed the formation of a hexagonal wurtzite crystal structure and vertical-aligned morphology of 2D ZnO nanosheets. The GQD-reinforced ZnO-nanosheet-based FTNG device generated an output voltage of 40 V and current density of 2 μA/cm, respectively, whereas pristine vertical-aligned ZnO-nanosheet-based device produced an output voltage of only 16 V and a current density of 0.36 μA/cm, respectively. The performance of the GQD-ZnO nanosheet FTNG device was also measured under illumination of the UV light, and a drastic increase in the output voltage is observed as compared to a pristine ZnO-nanosheet-based device. The GQD-reinforced ZnO nanosheets exhibited very high dielectric constant of 40 at low frequency side. The current finding suggested a novel approach to efficiently harvest mechanical energy and a novel method to fabricate the self-powered UV sensors and tribotronics devices using agrowaste-derived GQDs and ZnO nanosheets.
本文首次报道了基于垂直排列二维(2D)氧化锌纳米片的、由稻秆衍生石墨烯量子点(GQDs)增强的柔性摩擦纳米发电机(FTNG),用于收集机械能。GQDs(直径约为 5-7nm)和 ZnO 纳米片分别通过水热法和种子辅助化学路线生长而成。X 射线衍射和电子显微镜结果证实了六方纤锌矿晶体结构和 2D ZnO 纳米片的垂直排列形态的形成。GQD 增强的 ZnO 纳米片基 FTNG 器件的输出电压分别为 40V 和电流密度为 2μA/cm,而原始的垂直排列 ZnO 纳米片基器件的输出电压仅为 16V 和电流密度为 0.36μA/cm。在紫外光照射下,也对 GQD-ZnO 纳米片 FTNG 器件的性能进行了测量,与原始的 ZnO 纳米片基器件相比,观察到输出电压的急剧增加。GQD 增强的 ZnO 纳米片在低频侧表现出非常高的介电常数为 40。这一发现为高效收集机械能提供了一种新方法,并为利用农业废料衍生的 GQDs 和 ZnO 纳米片制造自供电紫外传感器和摩擦电子器件提供了一种新方法。